2015
DOI: 10.1038/ncomms7590
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Dynamically self-assembled silver nanoparticles as a thermally tunable metamaterial

Abstract: The availability of metamaterials with properties that can be actively tuned is crucial for the future development of various metamaterial-based technologies. Here we show that by using silver nanoparticles equipped with a thermally responsive organic coating a metamaterial is obtained with reversibly switchable properties. The material investigated exhibits dynamic self-assembly resulting from temperature-dependent changes of organic coating shape, which translates to a switchable spatial distribution of the … Show more

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Cited by 169 publications
(196 citation statements)
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“…Utilization of liquid crystals has been a promising approach . Combining the optical properties of nanoparticles with the structural adaptability of liquid crystal (LC) systems has allowed the development of switchable materials .…”
Section: Introductionmentioning
confidence: 99%
“…Utilization of liquid crystals has been a promising approach . Combining the optical properties of nanoparticles with the structural adaptability of liquid crystal (LC) systems has allowed the development of switchable materials .…”
Section: Introductionmentioning
confidence: 99%
“…[1][2][3] However, it remains a grand challenge to realize dynamic and reversible tuning of plasmons with large spectral shifts, which can be applied in large-area wallpapers and video walls, as well as sensors. Previous attempts to realize such a dynamic and reversible tuning used liquid crystals, [ 4,5 ] phase-change materials, DNA origami, [6][7][8] mechanical stretching, [ 9,10 ] stimuli-responsive polymers, [11][12][13][14] and electric fi elds. [ 15,16 ] However, either the tuning range was very small (<50 nm) or the plasmonic nanostructures were poorly defi ned (random aggregates), which hinders in-depth understanding and practical applications.…”
Section: Doi: 101002/adom201600094mentioning
confidence: 99%
“…In THz frequencies, transparent conductive oxides, graphene, liquid crystals, and ferroelectric materials are common materials which are used to design these tunable and reconfigurable metamaterials . The characters of these active materials are controlled and tuned through electrical, optical, and thermal methods . Many application and devices have been reported based on these tunable and reconfigurable metamaterials such as tunable absorber and dynamic manipulation of radiation, and amplitude modulations in THz.…”
Section: Conclusion and Prospectsmentioning
confidence: 99%
“…Active functions and features achieved by tunable or reconfigurable metamaterials are highly desired in the field of science, engineering, and military. 60 There are many tuning mechanisms for controlling the active components, such as electric, [60][61][62][63][64] thermal, [65][66][67][68] and optical. [69][70][71][72] Various types of active or tunable materials have been explored in tunable and reconfigurable metamaterials such as transparent conductive oxides, 73,74 ferroelectrics, 75,76 liquid crystal, 77,78 graphene, 61,79,80 and phase change materials [81][82][83][84] in terahertz.…”
Section: Introductionmentioning
confidence: 99%